Cellular reprogramming: A new way to understand aging mechanisms.

Q1 Biochemistry, Genetics and Molecular Biology Wiley Interdisciplinary Reviews: Developmental Biology Pub Date : 2018-03-01 Epub Date: 2018-01-19 DOI:10.1002/wdev.308
Burcu Yener Ilce, Umut Cagin, Acelya Yilmazer
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引用次数: 7

Abstract

Increased life expectancy, due to the rise in life quality and the decline in mortality rates, is leading to a society in which the population aged 60 and over is growing more rapidly than the entire population. Although various models and model organisms have been employed to investigate the mechanism of aging, induced pluripotent stem cells (iPSCs) are useful candidates to study human aging and age-related human diseases. This work discusses how iPSCs can be used as an alternative to the model organisms such as yeast, Caenorhabditis elegans, Drosophila melanogaster, or the mouse. The main focus is the reprogramming technology of somatic cells which is thought to provide an important perspective for rejuvenation strategies. The effects and relationships between aging and cell reprogramming are discussed, and studies related to aging and cell reprogramming are critically reviewed. We believe that for future studies, different parameters and detailed quantitative experiments should be performed in order to clearly understand the effect of aging on human cell reprogramming with respect to programming efficiency and differentiation capacity. This way, new insights will be provided to prevent or even reverse the aging process. WIREs Dev Biol 2018, 7:e308. doi: 10.1002/wdev.308 This article is categorized under: Adult Stem Cells, Tissue Renewal, and Regeneration > Stem Cells and Aging Adult Stem Cells, Tissue Renewal, and Regeneration > Regeneration Adult Stem Cells, Tissue Renewal, and Regeneration > Stem Cells and Disease.

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细胞重编程:一种了解衰老机制的新方法。
由于生活质量的提高和死亡率的下降,预期寿命的延长正在导致一个60岁及以上人口增长速度超过整个人口增长速度的社会。虽然各种各样的模型和模式生物已经被用来研究衰老的机制,诱导多能干细胞(iPSCs)是研究人类衰老和与年龄相关的人类疾病的有用候选者。本研究讨论了多能干细胞如何作为模式生物(如酵母、秀丽隐杆线虫、黑ogaster果蝇或小鼠)的替代品。主要的焦点是体细胞的重编程技术,这被认为是提供了一个重要的前景,恢复策略。本文讨论了衰老和细胞重编程之间的关系和影响,并对衰老和细胞重编程的相关研究进行了评述。我们认为,在未来的研究中,为了更清楚地了解衰老对人类细胞重编程在编程效率和分化能力方面的影响,需要进行不同的参数和详细的定量实验。通过这种方式,将提供新的见解,以防止甚至逆转衰老过程。生物工程学报,2018,37(4):391 - 391。doi: 10.1002 / wdev.308本文分类如下:成体干细胞、组织更新和再生>干细胞和衰老成体干细胞、组织更新和再生>再生成体干细胞、组织更新和再生>干细胞和疾病。
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期刊介绍: Developmental biology is concerned with the fundamental question of how a single cell, the fertilized egg, ultimately produces a complex, fully patterned adult organism. This problem is studied on many different biological levels, from the molecular to the organismal. Developed in association with the Society for Developmental Biology, WIREs Developmental Biology will provide a unique interdisciplinary forum dedicated to fostering excellence in research and education and communicating key advances in this important field. The collaborative and integrative ethos of the WIREs model will facilitate connections to related disciplines such as genetics, systems biology, bioengineering, and psychology. The topical coverage of WIREs Developmental Biology includes: Establishment of Spatial and Temporal Patterns; Gene Expression and Transcriptional Hierarchies; Signaling Pathways; Early Embryonic Development; Invertebrate Organogenesis; Vertebrate Organogenesis; Nervous System Development; Birth Defects; Adult Stem Cells, Tissue Renewal and Regeneration; Cell Types and Issues Specific to Plants; Comparative Development and Evolution; and Technologies.
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